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A sandwich-type three-dimensional layered double hydroxide nanosheet array/graphene composite: fabrication and high supercapacitor performance

机译:夹心型三维层状双氢氧化物纳米片阵列/石墨烯复合材料:制备和高超级电容器性能

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In this study, we have developed, for the first time, a facile in situ growth process to prepare a hierarchical three-dimensional (3D) composite composed of graphene layers with layered double hydroxide (LDH) nanosheet arrays grown on both sides. The fabrication process involves coating AlOOH colloids onto the graphene surfaces and the subsequent in situ growth of layered NiAl-LDH nanosheet arrays on the surfaces of graphene sheets via a hydrothermal process. It is found that the NiAl-LDH nanosheet arrays grow perpendicularly and uniformly on both sides of the graphene sheets, constructing a hierarchical 3D nanocomposite with an interesting sandwich structure. This uniquely structured composite has a large specific surface area (184.7 m~2 g~(-1)) and typical mesoporous characteristics, which are favorable for achieving high pseudocapacitance performance. Our results reveal that the composite has a specific capacitance of 1329 F g~(-1) at a current density of 3.57 A g~(-1), and the specific capacitance still remains as high as 851 F g~(-1) even when the current density is increased to 17.86 A g~(-1). The specific capacitance remains at 91% (823 F g~(-1)) after 500 cycles at 15.30 A g~(-1) compared with 74% for pure Ni/Al-LDH. The in situ growth method may pave a way to design and fabricate diverse LDH/graphene composites with interesting structures for potential application in supercapacitors and other fields.
机译:在这项研究中,我们首次开发了一种简便的原位生长工艺,以制备由石墨烯层组成的分层三维(3D)复合材料,石墨烯层两侧均生长有层状双氢氧化物(LDH)纳米片阵列。该制造过程涉及将AlOOH胶体涂覆在石墨烯表面上,并且随后经由水热过程在石墨烯片的表面上原位生长层状NiAl-LDH纳米片阵列。发现NiAl-LDH纳米片阵列在石墨烯片的两侧垂直且均匀地生长,从而构建了具有有趣的夹心结构的分层3D纳米复合材料。这种独特结构的复合材料具有较大的比表面积(184.7 m〜2 g〜(-1))和典型的介孔特性,有利于实现高的假电容性能。我们的结果表明,在电流密度为3.57 A g〜(-1)的情况下,复合材料的比电容为1329 F g〜(-1),并且比电容仍保持高达851 F g〜(-1)。即使当电流密度增加到17.86 A g〜(-1)时。在15.30 A g〜(-1)下500个循环后,比电容保持在91%(823 F g〜(-1)),而纯Ni / Al-LDH为74%。原位生长方法可以为设计和制造具有令人感兴趣的结构的各种LDH /石墨烯复合材料铺平道路,以潜在地应用于超级电容器和其他领域。

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